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Currently, typecheck leaves arguments to OPANIC as their original type. This CL changes it to insert implicit OCONVIFACE operations to convert arguments to `interface{}` like how any other function call would be handled. No immediate benefits, other than getting to remove a tiny bit of special-case logic in order.go's handling of OPANICs. Instead, the generic code path for handling OCONVIFACE is used, if necessary. Longer term, this should be marginally helpful for #43753, as it reduces the number of cases where we need values to be addressable for runtime calls. However, this does require adding some hacks to appease existing tests: 1. We need yet another kludge in inline budgeting, to ensure that reflect.flag.mustBe stays inlinable for cmd/compile/internal/test's TestIntendedInlining. 2. Since the OCONVIFACE expressions are now being introduced during typecheck, they're now visible to escape analysis. So expressions like "panic(1)" are now seen as "panic(interface{}(1))", and escape analysis warns that the "interface{}(1)" escapes to the heap. These have always escaped to heap, just now we're accurately reporting about it. (Also, unfortunately fmt.go hides implicit conversions by default in diagnostics messages, so instead of reporting "interface{}(1) escapes to heap", it actually reports "1 escapes to heap", which is confusing. However, this confusing messaging also isn't new.) Change-Id: Icedf60e1d2e464e219441b8d1233a313770272af Reviewed-on: https://go-review.googlesource.com/c/go/+/284412 Run-TryBot: Matthew Dempsky <mdempsky@google.com> TryBot-Result: Go Bot <gobot@golang.org> Reviewed-by: Cuong Manh Le <cuong.manhle.vn@gmail.com> Trust: Matthew Dempsky <mdempsky@google.com>
58 lines
2.2 KiB
Go
58 lines
2.2 KiB
Go
// +build !gcflags_noopt
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// errorcheck -0 -m
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// Copyright 2018 The Go Authors. All rights reserved.
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// Use of this source code is governed by a BSD-style
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// license that can be found in the LICENSE file.
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package foo
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import "bytes"
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// In order to get desired results, we need a combination of
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// both escape analysis and inlining.
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func bufferNotEscape() string {
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// b itself does not escape, only its buf field will be
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// copied during String() call, but object "handle" itself
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// can be stack-allocated.
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var b bytes.Buffer
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b.WriteString("123")
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b.Write([]byte{'4'}) // ERROR "\[\]byte{...} does not escape$"
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return b.String() // ERROR "inlining call to bytes.\(\*Buffer\).String$" "string\(bytes.b.buf\[bytes.b.off:\]\) escapes to heap$"
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}
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func bufferNoEscape2(xs []string) int { // ERROR "xs does not escape$"
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b := bytes.NewBuffer(make([]byte, 0, 64)) // ERROR "&bytes.Buffer{...} does not escape$" "make\(\[\]byte, 0, 64\) does not escape$" "inlining call to bytes.NewBuffer$"
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for _, x := range xs {
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b.WriteString(x)
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}
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return b.Len() // ERROR "inlining call to bytes.\(\*Buffer\).Len$"
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}
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func bufferNoEscape3(xs []string) string { // ERROR "xs does not escape$"
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b := bytes.NewBuffer(make([]byte, 0, 64)) // ERROR "&bytes.Buffer{...} does not escape$" "make\(\[\]byte, 0, 64\) does not escape$" "inlining call to bytes.NewBuffer$"
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for _, x := range xs {
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b.WriteString(x)
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b.WriteByte(',')
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}
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return b.String() // ERROR "inlining call to bytes.\(\*Buffer\).String$" "string\(bytes.b.buf\[bytes.b.off:\]\) escapes to heap$"
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}
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func bufferNoEscape4() []byte {
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var b bytes.Buffer
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b.Grow(64) // ERROR "bufferNoEscape4 ignoring self-assignment in bytes.b.buf = bytes.b.buf\[:bytes.m\]$" "inlining call to bytes.\(\*Buffer\).Grow$" "string\(.*\) escapes to heap"
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useBuffer(&b)
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return b.Bytes() // ERROR "inlining call to bytes.\(\*Buffer\).Bytes$"
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}
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func bufferNoEscape5() { // ERROR "can inline bufferNoEscape5$"
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b := bytes.NewBuffer(make([]byte, 0, 128)) // ERROR "&bytes.Buffer{...} does not escape$" "make\(\[\]byte, 0, 128\) does not escape$" "inlining call to bytes.NewBuffer$"
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useBuffer(b)
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}
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//go:noinline
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func useBuffer(b *bytes.Buffer) { // ERROR "b does not escape$"
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b.WriteString("1234")
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}
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